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酵母胸苷酸激酶与双底物抑制剂P1-(5'-腺苷基)P5-(5'-胸苷基)五磷酸(TP5A)复合物在2.0埃分辨率下的晶体结构:对催化作用和齐多夫定激活的影响

Crystal structure of yeast thymidylate kinase complexed with the bisubstrate inhibitor P1-(5'-adenosyl) P5-(5'-thymidyl) pentaphosphate (TP5A) at 2.0 A resolution: implications for catalysis and AZT activation.

作者信息

Lavie A, Konrad M, Brundiers R, Goody R S, Schlichting I, Reinstein J

机构信息

Department of Physical Biochemistry, Max Planck Institute for Molecular Physiology, Dortmund, Germany.

出版信息

Biochemistry. 1998 Mar 17;37(11):3677-86. doi: 10.1021/bi9720787.

DOI:10.1021/bi9720787
PMID:9521686
Abstract

The crystal structure of yeast thymidylate kinase (TmpK) complexed with the bisubstrate inhibitor P1-(5'-adenosyl) P5-(5'-thymidyl) pentaphosphate (TP5A) was determined at 2.0 A resolution. In this complex, TmpK adopts a closed conformation with a region (LID) of the protein closing upon the substrate and forming a helix. The interactions of TmpK and TP5A strongly suggest that arginine 15, which is located in the phosphate binding loop (P-loop) sequence, plays a catalytic role by interacting with an oxygen atom of the transferred phosphoryl group. Unlike other nucleoside monophosphate kinases where basic residues from the LID region participate in stabilizing the transition state, TmpK lacks such residues in the LID region. We attribute this function to Arg 15 of the P-loop. TmpK plays an important role in the phosphorylation of the AIDS prodrug AZT. The structures of TmpK with dTMP and with AZT-MP [Lavie, A., et al. (1997) Nat. Struct. Biol. 4, 601-604] implicate the movement of Arg15 in response to AZT-MP binding as an important factor in the 200-fold reduced catalytic rate with AZT-MP. TmpK from Escherichia coli lacks this arginine in its P-loop while having basic residues in the LID region. This suggested that, if such a P-loop movement were to occur in the E. coli TmpK upon AZT-MP binding, it should not have such a detrimental effect on catalysis. This hypothesis was tested, and as postulated, E. coli TmpK phosphorylates AZT-MP only 2.5 times slower than dTMP.

摘要

在2.0埃分辨率下测定了与双底物抑制剂P1-(5'-腺苷基)-P5-(5'-胸苷基)五磷酸(TP5A)复合的酵母胸苷酸激酶(TmpK)的晶体结构。在该复合物中,TmpK呈现出一种封闭构象,蛋白质的一个区域(LID)围绕底物闭合并形成一个螺旋。TmpK与TP5A的相互作用强烈表明,位于磷酸结合环(P环)序列中的精氨酸15通过与转移的磷酰基的一个氧原子相互作用发挥催化作用。与其他核苷单磷酸激酶不同,在其他核苷单磷酸激酶中,LID区域的碱性残基参与稳定过渡态,而TmpK在LID区域缺乏此类残基。我们将此功能归因于P环的精氨酸15。TmpK在艾滋病前药AZT的磷酸化过程中起重要作用。TmpK与dTMP以及与AZT-MP的结构[拉维,A.等人(1997年)《自然结构生物学》4,601 - 604]表明,精氨酸15响应AZT-MP结合的移动是AZT-MP催化速率降低200倍的一个重要因素。来自大肠杆菌的TmpK在其P环中缺乏这种精氨酸,而在LID区域有碱性残基。这表明,如果在AZT-MP结合时大肠杆菌TmpK中发生这样的P环移动,它对催化作用不应有如此有害的影响。对这一假设进行了测试,正如所推测的,大肠杆菌TmpK磷酸化AZT-MP的速度仅比dTMP慢2.5倍。

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